Belhamadia Youssef, Fortin André, Bourgault Yves
University of Alberta, Campus Saint-Jean, Edmonton, AB, Canada.
Math Biosci. 2009 Aug;220(2):89-101. doi: 10.1016/j.mbs.2009.05.003. Epub 2009 May 15.
The simulation of cardiac electrophysiological waves are known to require extremely fine meshes, limiting the applicability of current numerical models to simplified geometries and ionic models. In this work, an accurate numerical method based on a time-dependent anisotropic remeshing strategy is presented for simulating three-dimensional cardiac electrophysiological waves. The proposed numerical method greatly reduces the number of elements and enhances the accuracy of the prediction of the electrical wave fronts. Illustrations of the performance and the accuracy of the proposed method are presented using a realistic heart geometry. Qualitative and quantitative results show that the proposed methodology is far superior to the uniform mesh methods commonly used in cardiac electrophysiology.
已知心脏电生理波的模拟需要极其精细的网格,这限制了当前数值模型在简化几何形状和离子模型中的适用性。在这项工作中,提出了一种基于时间相关各向异性重新网格化策略的精确数值方法,用于模拟三维心脏电生理波。所提出的数值方法大大减少了单元数量,并提高了电波前预测的准确性。使用逼真的心脏几何形状展示了所提方法的性能和准确性。定性和定量结果表明,所提方法远优于心脏电生理学中常用的均匀网格方法。